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首页> 外文期刊>Molecular Plant-Microbe Interactions >Multiplicity of Sulfate and Molybdate Transporters and Their Role in Nitrogen Fixation in Rhizobium leguminosarum bv. viciae Rlv3841
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Multiplicity of Sulfate and Molybdate Transporters and Their Role in Nitrogen Fixation in Rhizobium leguminosarum bv. viciae Rlv3841

机译:硫酸根和钼酸根转运蛋白的多样性及其在豆科根瘤菌固氮中的作用。蚕豆Rlv3841

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摘要

Rhizobium leguminosarum Rlv3841 contains at least three sulfate transporters, i.e., SulABCD, SulP1 and SulP2, and a single molybdate transporter, ModABC. SulABCD is a high-affinity transporter whose mutation prevented growth on a limiting sulfate concentration, while SulP1 and SulP2 appear to be low affinity sulfate transporters. ModABC is the sole high-affinity molybdate transport system and is essential for growth with NO3- as a nitrogen source on limiting levels of molybdate (0.25 mu M). However, at 2.5 mu M molybdate, a quadruple mutant with all four transporters inactivated, had the longest lag phase on NO3-, suggesting these systems all make some contribution to molybdate transport. Growth of RIv3841 on limiting levels of sulfate increased sulB, sulP1, modB, and sulP2 expression 313.3-, 114.7-, 6.2-, and 4.0-fold, respectively, while molybdate starvation increased only modB expression (three to 7.5-fold). When grown in high-sulfate but not low-sulfate medium, pea plants inoculated with LMB695 (modB) reduced acetylene at only 14% of the wild-type rate, and this was not further reduced in the quadruple mutant. Overall, while modB is crucial to nitrogen fixation at limiting molybdate levels in the presence of sulfate, there is an unidentified molybdate transporter also capable of sulfate transport.
机译:豆科根瘤菌Rlv3841包含至少三个硫酸盐转运蛋白,即SulABCD,SulP1和SulP2,以及单个钼酸盐转运蛋白,ModABC。 SulABCD是一种高亲和力转运蛋白,其突变阻止了在极限硫酸盐浓度下的生长,而SulP1和SulP2似乎是低亲和力的硫酸盐转运蛋白。 ModABC是唯一的高亲和力钼酸盐传输系统​​,对于以NO3-作为氮源限制钼酸盐的水平(<0.25μM)生长至关重要。但是,在钼酸盐浓度为2.5μM时,所有四个转运蛋白均失活的四重突变体对NO3-的滞后时间最长,表明这些系统都对钼酸盐的转运做出了贡献。 RIv3841在硫酸盐限制水平上的生长分别使sulB,sulP1,modB和sulP2的表达分别增加313.3-,114.7-,6.2-和4.0-倍,而钼酸盐饥饿仅使modB的表达增加(三至7.5倍)。当在高硫酸盐培养基而不是低硫酸盐培养基中生长时,接种LMB695(modB)的豌豆植株仅以野生型率的14%还原乙炔,而在四重突变体中,乙炔并没有进一步降低。总体而言,虽然modB对于在硫酸盐存在下限制钼酸盐含量的固氮至关重要,但还有一个未确定的钼酸盐转运蛋白也能够进行硫酸盐转运。

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